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A warmer but drier Marine Isotope Stage 11 during the past 650 ka as revealed by the thickest loess on the western Chinese Loess Plateau

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Abstract

Marine Isotope Stage 11 (MIS 11; ca. 423–362 ka) is generally considered to be the best analogue for the present interglacial (Holocene), and investigation of it will improve our understanding of current climate variability and assist in predictions of future climate change. However, many recent studies primarily focus on the structure and duration of MIS 11. Little research has focused on climate warmth and stability recorded in the Chinese loess-paleosol sequences (LPS) during the S4 paleosol formation (equivalent to MIS 11). On the basis of previous work, this study presents a high-resolution record (ca. 75 a/cm) that spans from MIS 1 to MIS 15, as preserved in the thickest known Jingyuan loess section on the western Chinese Loess Plateau (CLP). This LPS is almost 165 m thick and was sampled from the upper part of L6 to the modern soil at 2-cm depth intervals. Measurements of magnetic susceptibility, mean grain size and >63 µm particle content, carbonate content, total organic carbon, and soil color of samples were made to reconstruct the paleoclimate variation, and a grain-size age model was used to constrain the chronological framework. The primary results show that a generally warm-humid climate dominated the S4 paleosol development, but the climate condition was extremely unstable during the whole of MIS 11. Two obviously different climate regimes controlled the MIS 11 climate variation: the early part of MIS 11 was extremely warm and stable, but the latter part was relatively cool (non-glacial) and unstable. This climate pattern was consistent with records on the central CLP and wavelet analysis suggested that it was forced by the 65°N insolation variability modulated by a quasi-100-ka cycle. In addition, a multi-proxy comparative study on the climate conditions during S0 to S5 paleosol development indicates that the period of S4 development might be the warmest interglacial of the past 650 ka. However, the climate condition during S4 development was not the most humid episode as recorded in Xifeng and Luochuan loess sections on the central CLP. On the contrary, it was drier than both the MIS 15 and the present interglacial on the western CLP, which is somewhat similar to the present climate pattern on the central CLP.

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References

  • Ashton N, Lewis S G, Parfitt S A, et al. 2008. New evidence for complex climate change in MIS 11 from Hoxne, Suffolk, UK. Quaternary Science Reviews, 27(7–8): 652–668.

    Article  Google Scholar 

  • Bascomb C L. 1961. A calcimeter for routine use on soil samples. Chemistry and Industry, 45: 1826–1827.

    Google Scholar 

  • Bassinot F C, Beaufort L, Vincent E, et al. 1994. Coarse fraction fluctuations in pelagic carbonate sediments from the tropical Indian Ocean: A 1500-kyr record of carbonate dissolution. Paleoceanography, 9(4): 579–600.

    Article  Google Scholar 

  • Bauch H A, Erlenkeuser H, Helmke J P, et al. 2000. A paleoclimatic evaluation of marine oxygen isotope stage 11 in the high-northern Atlantic (Nordic Seas). Global and Planetary Change, 24(1): 27–39.

    Article  Google Scholar 

  • Candy I, Schreve D C, Sherriff J, et al. 2014. Marine Isotope Stage 11: palaeoclimates, palaeoenvironments and its role as an analogue for the current interglacial. Earth-Science Reviews, 128: 18–51.

    Article  Google Scholar 

  • Chen F H, Zhang W X. 1993. The Loess Stratigraphy and Quaternary Glacial Problems in the Areas of Gansu Province and Qinghai Province. Beijing: Science Press. (in Chinese)

    Google Scholar 

  • Chen F H, Bloemendal J, Feng Z D, et al. 1999. East Asian monsoon variations during oxygen isotope stage 5: evidence from the northwestern margin of the Chinese Loess Plateau. Quaternary Science Reviews, 18(8–9): 1127–1135.

    Article  Google Scholar 

  • Chen F H, Qiang M R, Feng Z D, et al. 2003. Stable East Asian monsoon climate during the Last Interglacial (Eemian) indicated by paleosol S1 in the western part of the Chinese Loess Plateau. Global and Planetary Change, 36(3): 171–179.

    Article  Google Scholar 

  • Chen J S, Liu X M, Kravchinsky V A. 2014. Response of the high-resolution Chinese loess grain size record to the 50°N integrated winter insolation during the last 500,000 years. Geophysical Research Letters, 41(17): 6244–6251.

    Article  Google Scholar 

  • Derbyshire E, Meng X M, Kemp R A. 1998. Provenance, transport and characteristics of modern Aeolian dust in western Gansu province, China, and interpretation of the Quaternary loess record. Journal of Arid Environments, 39(3): 497–516.

    Article  Google Scholar 

  • Desprat S, Sánchez Goñi M F, Turon J L, et al. 2005. Is vegetation responsible for glacial inception during periods of muted insolation changes? Quaternary Science Reviews, 24(12–13): 1361–1374.

    Article  Google Scholar 

  • Ding Z L, Liu T S, Rutter N W, et al. 1995. Ice-volume forcing of East Asian winter monsoon variations in the past 800,000 years. Quaternary Research, 44(2): 149–159.

    Article  Google Scholar 

  • Ding Z L, Sun J M, Rutter N W, et al. 1999. Changes in sand content of loess deposits along a north–south transect of the Chinese Loess Plateau and the implications for desert variations. Quaternary Research, 52(1): 56–62.

    Article  Google Scholar 

  • Ding Z L, Yu Z W, Yang S L, et al. 2001. Coeval changes in grain size and sedimentation rate of eolian loess, the Chinese Loess Plateau. Geophysical Research Letters, 28(10): 2097–2100.

    Article  Google Scholar 

  • Ding Z L, Derbyshire E, Yang S L, et al. 2002. Stacked 2.6-Ma grain size record from the Chinese loess based on five sections and correlation with the deep-sea δ18O record. Paleoceanography, 17(3): 5-1–5-21.

    Google Scholar 

  • Droxler A W, Alley R B, Howard W R, et al. 2003a. Unique and exceptionally long interglacial Marine Isotope Stage 11: window into Earth warm future climate. In: Droxler A W, Poore R Z, Burckle L H. Earth’s Climate and Orbital Eccentricity: The Marine Isotope Stage 11 Question. Washington D C: American Geophysical Union, 1–14.

    Chapter  Google Scholar 

  • Droxler A W, Poore R Z, Burckle L H. 2003b. The Chinese loess perspective on Marine Isotope Stage 11 as an extreme interglacial. In: Vidic N J, Verosub K L, Singer M J. Earth’s Climate and Orbital Eccentricity: The Marine Isotope Stage 11 Question. Washington, DC: American Geophysical Union, 231–240.

    Chapter  Google Scholar 

  • EPICA Community Members. 2004. Eight glacial cycles from an Antarctic ice core. Nature, 429(6992): 623–628.

    Article  Google Scholar 

  • Fang X M, Ono Y, Fukusawa H, et al. 1999. Asian summer monsoon instability during the past 60,000 years: magnetic susceptibility and pedogenic evidence from the western Chinese Loess Plateau. Earth and Planetary Science Letters, 168(3–4): 219–232.

    Article  Google Scholar 

  • Guo Z T, Liu T, Fedoroff N, et al. 1998. Climate extremes in Loess of China coupled with the strength of deep-water formation in the North Atlantic. Global and Planetary Change, 18(3–4): 113–128.

    Article  Google Scholar 

  • Guo Z T, Biscaye P, Wei L Y, et al. 2000. Summer monsoon variations over the last 1.2 Ma from the weathering of loess-soil sequences in China. Geophysical Research Letters, 27(12): 1751–1754.

    Article  Google Scholar 

  • Guo Z T, Berger A, Yin Q Z, et al. 2009. Strong asymmetry of hemispheric climates during MIS-13 inferred from correlating China Loess and Antarctica ice records. Climate of the Past, 5(1): 21–31.

    Article  Google Scholar 

  • Han J M, Keppens E, Liu T, et al. 1997. Stable isotope composition of the carbonate concretion in loess and climate change. Quaternary International, 37: 37–43.

    Article  Google Scholar 

  • Hao Q Z, Guo Z T. 2005. Spatial variations of magnetic susceptibility of Chinese loess for the last 600 kyr: implications for monsoon evolution. Journal of Geophysical Research, 110(B12), doi: 10.1029/2005JB003765.

    Google Scholar 

  • Hao Q Z, Wang L, Oldfield F, et al. 2012. Delayed build-up of arctic ice sheets during 400,000-year minima in insolation variability. Nature, 490(7420): 393–396.

    Article  Google Scholar 

  • Heslop D, Shaw J, Bloemendal J, et al. 1999. Sub-millennial scale variations in East Asian monsoon systems recorded by dust deposits from the North-western Chinese Loess Plateau. Physics and Chemistry of the Earth, Part A: Solid Earth and Geodesy, 24(9): 785–792.

    Article  Google Scholar 

  • Heslop D, Langereis C G, Dekkers M J. 2000. A new astronomical timescale for the loess deposits of Northern China. Earth and Planetary Science Letters, 184(1): 125–139.

    Article  Google Scholar 

  • Hodell D A, Charles C D, Ninnemann U S. 2000. Comparison of interglacial stages in the South Atlantic sector of the southern Ocean for the past 450 kyr: implifications for Marine Isotope Stage (MIS) 11. Global and Planetary Change, 24(1): 7–26.

    Article  Google Scholar 

  • Howard W R. 1997. Palaeoclimatology: a warm future in the past. Nature, 388(6641): 418–419.

    Article  Google Scholar 

  • Imbrie J, Hays J D, Martinson D G, et al. 1984. The orbital theory of Pleistocene climate: support from a revised chronology of the marine δ18O record. In: Berger A. Milankovitch and Climate, Part 1. Netherlands: Springer, 269–305.

    Google Scholar 

  • Karabanov E, Prokopenko A, Williams D, et al. 2003. High-Resolution MIS 11 record from the continental sedimentary archive of lake baikal, Siberia. In: Droxler A W, Poore R Z, Burckle L H. Earth's Climate and Orbital Eccentricity: The Marine Isotope Stage 11 Question. Geophysical Monograph, Vol. 137. Washington, DC: American Geophysical Union, 223–230.

    Article  Google Scholar 

  • King A L, Howard W R. 2000. Middle Pleistocene sea-surface temperature change in the southwest Pacific Ocean on orbital and suborbital time scales. Geology, 28(7): 659.

    Article  Google Scholar 

  • Kleinen T, Hildebrandt S, Prange M, et al. 2014. The climate and vegetation of Marine Isotope Stage 11-Model results and proxy-based reconstructions at global and regional scale. Quaternary International, 348: 247–265.

    Article  Google Scholar 

  • Konert M, Vandenberghe J E F. 1997. Comparison of laser grain size analysis with pipette and sieve analysis: a solution for the underestimation of the clay fraction. Sedimentology, 44(3): 523–535.

    Article  Google Scholar 

  • Laskar J, Fienga A, Gastineau M, et al. 2011. La2010: a new orbital solution for the long-term motion of the Earth. Astronomy & Astrophysics, 532(A89), doi: 10.1051/0004-6361/201116836.

    Google Scholar 

  • Lisiecki L E, Raymo M E. 2005. A pliocene-pleistocene stack of 57 globally distributed benthic δ18O records. Paleoceanography, 20(1): PA1003.

    Article  Google Scholar 

  • Liu G, Liu P L, Yang M Y, et al. 2013. The significance and relationships among substitutive climatic proxies in the Holocene at the middle Loess Plateau in China. Environmental Earth Sciences, 70(7): 2997–3004.

    Article  Google Scholar 

  • Liu T S. 1985. Loess and the Environment. Beijing: China Ocean Press. (in Chinese)

    Google Scholar 

  • Liu T, Ding Z L. 1998. Chinese loess and the paleomonsoon. Annual Review of Earth and Planetary Sciences, 26: 111–145.

    Article  Google Scholar 

  • Liu T, Ding Z L, Rutter N. 1999. Comparison of Milankovitch periods between continental loess and deep sea records over the last 2.5 Ma. Quaternary Science Reviews, 18(10–11): 1205–1212.

    Article  Google Scholar 

  • Loutre M F. 2003. Clues from MIS 11 to predict the future climate-a modelling point of view. Earth and Planetary Science Letters, 212(1–2): 213–224.

    Article  Google Scholar 

  • Loutre M F, Berger A. 2003. Marine Isotope Stage 11 as an analogue for the present interglacial. Global and Planetary Change, 36(3): 209–217.

    Article  Google Scholar 

  • Mix A C, Pisias N G, Rugh W, et al. 1995. Benthic foraminifer stable isotope record from Site 849 (0–5 Ma): local and global climate changes. In: Pisias N G, et al. Proceedings of the Ocean Drilling Program, Scientific Results, Volume 138. Ocean Drilling Program, 371–412.

    Google Scholar 

  • Nelson D W, Sommers L E. 1982. Total carbon, organic carbon and organic matter. In: Page A L, Miller R H, Keeney D R. Methods of Soil Analysis (2nd ed). Madison: American Society of Agronomy, 535–567.

    Google Scholar 

  • Pol K, Debret M, Masson-Delmotte V, et al. 2011. Links between MIS 11 millennial to sub-millennial climate variability and long term trends as revealed by new high resolution EPICA Dome C deuterium data–a Comparison with the Holocene. Climate of the Past, 7(2): 437–450.

    Article  Google Scholar 

  • Poli M S, Meyers P A, Thunell R C, et al. 2012. Glacial-interglacial variations in sediment organic carbon accumulation and benthic foraminiferal assemblages on the Bermuda Rise (ODP Site 1063) during MIS 13 to 10. Paleoceanography, 27(3): PA3216.

    Article  Google Scholar 

  • Porter S C, An Z S. 1995. Correlation between climate events in the North Atlantic and China during the last glaciation. Nature, 375(6529): 305–308.

    Article  Google Scholar 

  • Porter S C. 2001. Chinese loess record of monsoon climate during the last glacial-interglacial cycle. Earth-Science Reviews, 54(1–3): 115–128.

    Article  Google Scholar 

  • Prokopenko A A, Bezrukova E V, Khursevich G K, et al. 2010. Climate in continental interior Asia during the longest interglacial of the past 500 000 years: the new MIS 11 records from Lake Baikal, SE Siberia. Climate of the Past, 6(1): 31–48.

    Article  Google Scholar 

  • Reyes A V, Carlson A E, Beard B L, et al. 2014. South Greenland ice-sheet collapse during Marine Isotope Stage 11. Nature, 510(7506): 525–528.

    Article  Google Scholar 

  • Shackleton N J, Hall M A, Pate D. 1995. Pliocene Stable Isotope Stratigraphy of ODP Site 846. In: Proceedings of the Ocean Drilling Program, Scientific Results, Volume 138. Ocean Drilling Program, 337–355.

    Google Scholar 

  • Shi P H, Yang T B, Tian Q C, et al. 2012. Chroma chracteristics in the loess-paleosol at Jingyuan section and its signification to paleocliamete. Journal of Lanzhou University (Natural Sciences), 48(2): 15–23. (in Chinese)

    Google Scholar 

  • Shi P H, Yang T B, Tian, Q C, et al. 2013. Loess record of climatic changes during MIS 12–10 in the Jingyuan section, northwestern Chinese Loess Plateau. Quaternary International, 296: 149–159.

    Article  Google Scholar 

  • Stocker T F, Qin D H, Plattner G K, et al. 2013. Climate change 2013: the physical science basis. In: Working Group I Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge, United Kingdom and New York: Cambridge University Press.

    Google Scholar 

  • Sun Y B, Chen J, Clemens S C, et al. 2006. East Asian monsoon variability over the last seven glacial cycles recorded by a loess sequence from the northwestern Chinese Loess Plateau. Geochemistry, Geophysics, Geosystems, 7: Q12Q02.

  • Sun Y B, Wang X L, Liu Q S, et al. 2010. Impacts of post-depositional processes on rapid monsoon signals recorded by the last glacial loess deposits of Northern China. Earth and Planetary Science Letters, 289(1–2): 171–179.

    Article  Google Scholar 

  • Sun Y B, He L, Liang L J, et al. 2011. Changing color of Chinese loess: geochemical constraint and paleoclimatic significance. Journal of Asian Earth Sciences, 40(6): 1131–1138.

    Article  Google Scholar 

  • Torrence C, Compo G P. 1998. A practical guide to wavelet analysis. Bulletin of the American Meteorological Society, 79(1): 61–78.

    Article  Google Scholar 

  • Tzedakis P C. 2010. The MIS 11-MIS 1 Analogy, Southern European Vegetation, Atmospheric Methane and the "Early Anthropogenic Hypothesis". Climate of the Past, 6(2): 131–144.

    Article  Google Scholar 

  • Vidic N J, Verosub K L, Singer M J. 2003. The Chinese loess perspective on Marine Isotope Stage 11 as an extreme interglacial. In: Droxler A W, Poore R Z, Burckle L H. Earth’s Climate and Orbital Eccentricity: The Marine Isotope Stage 11 Question. Washington, DC: American Geophysical Union, 231–240.

    Chapter  Google Scholar 

  • Vogel H, Meyer-Jacob C, Melles M, et al. 2013. Detailed insight into arctic climatic variability during MIS 11c at Lake El'gygytgyn, NE Russia. Climate of the Past, 9(4): 1467–1479.

    Article  Google Scholar 

  • Walden F, Oldfield F, Smith J. 1999. Environmental magnetism: a practical guide. Technical Guide No. 6. London: Quaternary Research Association, 35–62.

    Google Scholar 

  • Wu G J, Pan B T, Guan Q Y, et al. 2002. Loess record of climatic changes during MIS5 in the Hexi Corridor, Northwest China. Quaternary International, 97–98: 167–172.

    Article  Google Scholar 

  • Wu N Q, Chen X Y, Rousseau D D, et al. 2007. Climatic conditions recorded by terrestrial mollusc assemblages in the Chinese Loess Plateau during marine Oxygen Isotope Stages 12–10. Quaternary Science Reviews, 26(13–14): 1884–1896.

    Article  Google Scholar 

  • Wu T N, Lu G Y. 2012. Climatic sub-cycles recorded by the fourth paleosol layer at Luochuan on the Loess Plateau. Environmental Earth Sciences, 66(5): 1329–1335.

    Article  Google Scholar 

  • Yin Q Z, Guo Z T. 2008. Strong summer monsoon during the cool MIS-13. Climate of the Past, 4(1): 29–34.

    Article  Google Scholar 

  • Yue L P, Lei X Y, Qu H J. 1991. A magnetostratigraphic study on the Jingyuan loess section, Gansu, China. Quaternary Sciences, 11(4), 349–353. (in Chinese)

    Google Scholar 

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Shi, P., Yang, T., Tian, Q. et al. A warmer but drier Marine Isotope Stage 11 during the past 650 ka as revealed by the thickest loess on the western Chinese Loess Plateau. J. Arid Land 8, 315–330 (2016). https://doi.org/10.1007/s40333-016-0123-7

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